JP4304519B2 - Uninterruptible power system - Google Patents

Uninterruptible power system Download PDF

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JP4304519B2
JP4304519B2 JP2006035372A JP2006035372A JP4304519B2 JP 4304519 B2 JP4304519 B2 JP 4304519B2 JP 2006035372 A JP2006035372 A JP 2006035372A JP 2006035372 A JP2006035372 A JP 2006035372A JP 4304519 B2 JP4304519 B2 JP 4304519B2
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converter
power
power supply
voltage
storage means
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誠 谷津
和義 倉島
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Fuji Electric Co Ltd
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Fuji Electric Systems Co Ltd
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本発明は、入力商用電源が変動した場合でも、負荷に安定した電源を供給する無停電電源装置に関するもので、詳しくは無停電電源装置の信頼性向上のための技術に関する。 The present invention relates to an uninterruptible power supply that supplies a stable power to a load even when an input commercial power supply fluctuates, and more particularly to a technique for improving the reliability of the uninterruptible power supply.

図5に従来の直列電圧補償式無停電電源装置の回路構成を示す。図5の回路では、交流入力端子10uと交流出力端子11Uの間の交流母線にACスイッチ4とトランス2の2次巻線が直列に接続され、トランス2の1次巻線には、フィルタコンデンサ7と半導体ブリッジ20、21からなる直列コンバータ24の交流側端子が接続されている。この直列コンバータ24と直流部を共通とする半導体ブリッジ22、23からなる並列コンバータ25の交流側端子はリアクトル6を介して交流出力端子11U、11Vに接続されている。また、直列コンバータ24及び並列コンバータ25の直流部には、蓄電池3が接続された構成となっている。   FIG. 5 shows a circuit configuration of a conventional series voltage compensation uninterruptible power supply. In the circuit of FIG. 5, the AC switch 4 and the secondary winding of the transformer 2 are connected in series to the AC bus between the AC input terminal 10u and the AC output terminal 11U. A filter capacitor is connected to the primary winding of the transformer 2. 7 and the AC side terminal of the series converter 24 composed of the semiconductor bridges 20 and 21 are connected. The AC side terminal of the parallel converter 25 composed of the semiconductor bridges 22 and 23 sharing the DC part with the series converter 24 is connected to the AC output terminals 11U and 11V via the reactor 6. In addition, the storage battery 3 is connected to the direct current portions of the series converter 24 and the parallel converter 25.

このような回路構成において、交流入力端子10u、10vに接続される入力商用電源の電源電圧が変動した時、直列コンバータ24を制御することによりトランス2の2次巻線電圧の調節が可能で、入力商用電源の電圧変動分をこのトランス2の2次巻線電圧で補償することにより、交流出力端子に安定した交流電圧を供給することができる。例えば、入力商用電源の変動が電圧低下であれば、その低下電圧分を補償するためトランス2が低下電圧分を加算するように直列コンバータ24を制御する。ここで交流母線に負荷電流が流れると、直列コンバータ24からトランス2を介し交流母線側に電力を注入することになる。そこで必要となるエネルギーは、並列コンバータ25を順変換動作(ACをDCに変換)させることで交流母線から供給される。逆に入力商用電源の変動が電圧上昇であれば、その上昇電圧分を補償するためトランス2が上昇電圧分を減算するように直列コンバータ24を制御する。ここで交流母線に負荷電流が流れると、直列コンバータ24がトランス2を介して直流電力を吸収することになる。その直流電力(エネルギー)は並列コンバータ25を逆変換動作(DCをACに変換)させることで、交流母線に回生される。   In such a circuit configuration, when the power supply voltage of the input commercial power source connected to the AC input terminals 10u and 10v fluctuates, the secondary winding voltage of the transformer 2 can be adjusted by controlling the series converter 24. By compensating the voltage fluctuation of the input commercial power supply with the secondary winding voltage of the transformer 2, a stable AC voltage can be supplied to the AC output terminal. For example, if the fluctuation of the input commercial power supply is a voltage drop, the series converter 24 is controlled so that the transformer 2 adds the drop voltage to compensate for the drop voltage. Here, when a load current flows through the AC bus, power is injected from the series converter 24 to the AC bus via the transformer 2. The energy required there is supplied from the AC bus by causing the parallel converter 25 to perform a forward conversion operation (converting AC to DC). Conversely, if the fluctuation of the input commercial power supply is a voltage rise, the series converter 24 is controlled so that the transformer 2 subtracts the rise voltage to compensate for the rise voltage. Here, when a load current flows through the AC bus, the series converter 24 absorbs DC power via the transformer 2. The DC power (energy) is regenerated to the AC bus by causing the parallel converter 25 to perform an inverse conversion operation (converting DC to AC).

この時の各部の電圧波形を図6に示す。入力電圧が低下している期間ではトランス2の2次巻線電圧が同相の電圧となり低下電圧分を補償し、入力電圧が上昇している期間ではトランス2の2次巻線電圧が逆相の電圧となり上昇電圧分を補償していることがわかる。
この様な動作の詳細については、例えば、特許文献1に開示されている。
さらに並列コンバータ25は、交流出力端子から負荷に流れる無効電流成分補償、いわゆるアクティブフィルタ機能を備え、交流入力端子から装置側に入力される電流が力率1の正弦波となるように動作する。
この様な動作の詳細については、例えば、非特許文献1に開示されている。
実登第2586984号 富士時報、vol.77、no.6、2004、p458~p462、 大容量UPS「UPS8000シリーズ」
The voltage waveform of each part at this time is shown in FIG. During the period when the input voltage is decreasing, the secondary winding voltage of the transformer 2 is in-phase voltage and compensates for the decreased voltage. During the period when the input voltage is increasing, the secondary winding voltage of the transformer 2 is in reverse phase. It can be seen that the voltage is compensated for the rising voltage.
Details of such operations are disclosed in Patent Document 1, for example.
Furthermore, the parallel converter 25 has a reactive current component compensation that flows from the AC output terminal to the load, that is, a so-called active filter function, and operates so that the current input from the AC input terminal to the device side becomes a sine wave with a power factor of 1.
Details of such operations are disclosed in Non-Patent Document 1, for example.
Noto 2586984 Fuji time signal, vol.77, no.6, 2004, p458-p462, large-capacity UPS "UPS8000 series"

従来の技術においては、直列コンバータ24及び並列コンバータ25の制御応答には、遅れが存在している。そのため、予期不可能な外部要因である、負荷の急変時や入力電圧の急変時には、その制御応答の遅れに起因して、僅かではあるが一時的に蓄電池3の充・放電が発生し、その直流電圧が変動するといった問題があった。   In the prior art, there is a delay in the control response of the series converter 24 and the parallel converter 25. Therefore, when the load suddenly changes or the input voltage suddenly changes, which is an unforeseen external factor, charging / discharging of the storage battery 3 occurs slightly but temporarily due to the delay in the control response. There was a problem that the DC voltage fluctuated.

通常、蓄電池3は満充電状態で保持されているが、この時、上記制御応答の遅れに起因して蓄電池3の放電が発生した場合は、蓄電池3に十分なエネルギーがあるため直流電圧の低下も僅かであり特に問題とならない。しかし、充電が発生した場合は、蓄電池3が過充電となり直流電圧が大きく上昇してしまい、装置保護上の問題となるため、直流電圧の過電圧防止が課題となっていた。   Normally, the storage battery 3 is held in a fully charged state. At this time, if the storage battery 3 is discharged due to the delay in the control response, the storage battery 3 has sufficient energy, so the DC voltage decreases. However, there is no particular problem. However, when charging occurs, the storage battery 3 is overcharged and the DC voltage increases greatly, which causes a problem in device protection. Therefore, prevention of overvoltage of the DC voltage has been a problem.

請求項の発明においては、交流入力端子と交流出力端子との間に直列接続されたトランスと、前記トランスを駆動する第1のDC/AC変換器と、前記第1のDC/AC変換器と直流部を共通にした第2のDC/AC変換器と、前記直流部に接続された電力貯蔵手段とを備え、第2のDC/AC変換器の交流出力を前記交流出力端子に接続し、入力商用電源電圧変動が所定値以内の場合は、第2のDC/AC変換器により交流出力端子側から第1のDC/AC変換器への直流電力の供給又は回生を行い、第1のDC/AC変換器によりトランス電圧を調整することにより交流出力電圧を安定化し、入力商用電源電圧変動が所定値以上の場合は、電力貯蔵手段から第2のDC/AC変換器を介して負荷に電力を供給する無停電電源装置において、入力商用電源電圧変動範囲が所定値以内の運転モードで、前記電力貯蔵手段の電圧が予め設定した値よりも高く、かつ負荷電力が設定された値よりも小さい条件で、一時的に第1のDC/AC変換器の動作を休止させ、電力貯蔵手段からの電力で第2のDC/AC変換器を介して負荷に電力を供給する。
In the first aspect of the present invention, a transformer connected in series between an AC input terminal and an AC output terminal, a first DC / AC converter for driving the transformer, and the first DC / AC converter And a second DC / AC converter having a DC part in common and a power storage means connected to the DC part, and connecting the AC output of the second DC / AC converter to the AC output terminal. When the input commercial power supply voltage fluctuation is within a predetermined value, the second DC / AC converter supplies or regenerates DC power from the AC output terminal side to the first DC / AC converter, The AC output voltage is stabilized by adjusting the transformer voltage by the DC / AC converter, and when the input commercial power supply voltage fluctuation is a predetermined value or more, the power is stored in the load via the second DC / AC converter. In an uninterruptible power supply that supplies power In the operation mode in which the input commercial power supply voltage fluctuation range is within a predetermined value, the first voltage is temporarily set under the condition that the voltage of the power storage means is higher than a preset value and the load power is smaller than a preset value. The operation of the DC / AC converter is halted, and power is supplied to the load via the second DC / AC converter with the power from the power storage means.

請求項の発明においては、交流入力端子と交流出力端子との間に直列接続された交流入力開閉手段と、直流部に電力貯蔵手段を備えたDC/AC変換器とを備え、DC/AC変換器の交流出力を前記交流出力端子に接続し、入力商用電源電圧変動が所定値以内の場合は、DC/AC変換器により交流出力端子側から電力貯蔵手段への直流電力の供給又は回生を行い、入力商用電源電圧変動が所定値以上の場合は、電力貯蔵手段からDC/AC変換器を介して負荷に電力を供給する無停電電源装置において、入力商用電源電圧変動範囲が所定値以内の運転モードで、前記電力貯蔵手段の電圧が予め設定した値よりも高く、かつ負荷電力が設定された値よりも小さい条件で、一時的に交流入力開閉手段を開路し、電力貯蔵手段からの電力でDC/AC変換器を介して負荷に電力を供給する。
According to a second aspect of the invention, there is provided an AC input switching means connected in series between an AC input terminal and an AC output terminal, and a DC / AC converter having a power storage means in the DC section, When the AC output of the converter is connected to the AC output terminal and the input commercial power supply voltage fluctuation is within a predetermined value, the DC / AC converter supplies or regenerates DC power from the AC output terminal side to the power storage means. If the input commercial power supply voltage fluctuation is greater than or equal to a predetermined value, the input commercial power supply voltage fluctuation range is within the predetermined value in the uninterruptible power supply that supplies power to the load from the power storage means via the DC / AC converter. In the operation mode, under the condition that the voltage of the power storage means is higher than a preset value and the load power is lower than the preset value, the AC input switching means is temporarily opened, and the power from the power storage means At DC Supplying power to the load via an AC converter.

入力の商用電源が停電と判定されない通常の運転動作時において、直流電圧の上昇を検出した場合は、一時的に入力商用電源から負荷への電力供給を休止し、並列コンバータの制御動作をアクティブフィルタ動作+バッテリ充電動作から、蓄電池からのエネルギーで負荷に安定した電力を供給する運転動作に切換えることにより、効果的に直流電圧の上昇を防止することが可能となり、装置の信頼性を向上させることが可能となる。   During normal operation when the input commercial power supply is not determined to be out of power, if a rise in DC voltage is detected, power supply from the input commercial power supply to the load is temporarily suspended, and the parallel converter control operation is active filtered. By switching from operation + battery charging operation to driving operation that supplies stable power to the load with energy from the storage battery, it is possible to effectively prevent an increase in DC voltage and improve device reliability. Is possible.

本発明は、定常時入力商用電源から負荷に電力を供給し、停電時蓄電池から逆変換器(インバータ)を介して負荷に電力を供給する無停電電源装置において、入力商用電源電圧が所定値内であっても、蓄電池電圧が所定値以上に上昇した場合には、一時的に蓄電池からDC/AC変換器を介して負荷に電力を供給するようにしたものである。   The present invention relates to an uninterruptible power supply that supplies power to a load from a steady-state input commercial power source and supplies power to the load from a storage battery during a power failure via an inverter (inverter). Even so, when the storage battery voltage rises above a predetermined value, power is temporarily supplied from the storage battery to the load via the DC / AC converter.

本発明の第1の実施例の回路構成を図1に示す。図1の主回路では、交流入力端子10と交流出力端子11の間の交流母線にトランス2の2次巻線が直列に接続され、1次巻線には、直列コンバータ24の交流側端子が接続されている。この直列コンバータ24と直流部を共通とする、並列コンバータ25の交流側端子は交流出力端子11のある交流母線に接続されている。また、直列コンバータ24.並列コンバータ25の直流部には蓄電池3が接続されている。ここで、電流検出器40は交流出力電流Iout検出用、電流検出器41は並列コンバータ25の出力電流Iinv検出用、電流検出器42は蓄電池の充電電流Ib検出用である。   A circuit configuration of the first embodiment of the present invention is shown in FIG. In the main circuit of FIG. 1, the secondary winding of the transformer 2 is connected in series to the AC bus between the AC input terminal 10 and the AC output terminal 11, and the AC side terminal of the series converter 24 is connected to the primary winding. It is connected. The AC side terminal of the parallel converter 25, which shares the DC converter with the series converter 24, is connected to an AC bus having the AC output terminal 11. Further, the series converter 24. The storage battery 3 is connected to the DC part of the parallel converter 25. Here, the current detector 40 is for detecting the AC output current Iout, the current detector 41 is for detecting the output current Iinv of the parallel converter 25, and the current detector 42 is for detecting the charging current Ib of the storage battery.

このような主回路構成において、入力の商用電源の電圧が停電と判定されない範囲における通常の動作として、制御装置30では、電流検出器CT40により交流出力電流Ioutを検出し、そのIoutに含まれる無効電流成分Iqをその演算により算出し、並列コンバータ25がそのIqを補償するように、いわゆるアクティブフィルタ制御を行い、同時に電流検出器42による蓄電池3の充電電流Ibと直流電圧Vdcの検出から蓄電池充電制御を行っている。さらに交流出力端子11の電圧Voutを検出し、このVoutが一定の電圧となるように、直列コンバータ24に対し出力電圧一定制御を行っている。
このような制御動作を行うなかで、入力商用電源電圧の急変や負荷の急変といった予期出来ない外部要因が発生し、制御装置30の制御応答の遅れにより直流電圧Vdcが変動して過電圧となった場合、直流電圧判定器31ではその過電圧を判定し、運転条件判定回路33、34に信号を送り、運転方式選択回路33、34の出力条件により、制御装置30では直列コンバータ24の制御を出力電圧一定制御から全休止のパルスOFFに切換え、並列コンバータ25の制御をアクティブフィルタ制御+蓄電池充電制御から出力電圧一定制御に切換える。
In such a main circuit configuration, as a normal operation in a range where the voltage of the input commercial power supply is not determined to be a power failure, the control device 30 detects the AC output current Iout by the current detector CT40, and the invalidity included in the Iout The current component Iq is calculated by the calculation, and so-called active filter control is performed so that the parallel converter 25 compensates for the Iq, and at the same time, the charging of the storage battery 3 from the detection of the charging current Ib and the DC voltage Vdc of the storage battery 3 by the current detector 42 is performed. Control is in progress. Furthermore, the voltage Vout of the AC output terminal 11 is detected, and the output voltage constant control is performed on the series converter 24 so that this Vout becomes a constant voltage.
During such a control operation, an unexpected external factor such as a sudden change in the input commercial power supply voltage or a sudden change in the load occurs, and the DC voltage Vdc fluctuates due to a delay in the control response of the control device 30, resulting in an overvoltage. In this case, the DC voltage determination unit 31 determines the overvoltage, sends a signal to the operation condition determination circuits 33 and 34, and the control device 30 controls the series converter 24 according to the output conditions of the operation method selection circuits 33 and 34. The constant control is switched to the pulse OFF for all pauses, and the control of the parallel converter 25 is switched from the active filter control + storage battery charging control to the constant output voltage control.

この動作により、トランス2の1次巻線に接続されている直列インバータ24がパルスOFFとなるため、トランス1次側は開放状態と等価になり、入力商用電源から入ってくる交流入力電流Iinは零に制限され、代わりに並列コンバータ25の出力電圧一定制御により、蓄電池3からのエネルギーで負荷に安定した電力を継続して供給することが可能になる。この動作で、蓄電池3のエネルギーを消費し放電するため、自然と直流電圧Vdcは下がり、元の状態に戻ることが可能になる。   By this operation, the series inverter 24 connected to the primary winding of the transformer 2 is turned off, so that the transformer primary side is equivalent to an open state, and the AC input current Iin coming from the input commercial power supply is Instead of being limited to zero, instead of constant output voltage control of the parallel converter 25, it becomes possible to continuously supply stable power to the load with the energy from the storage battery 3. In this operation, since the energy of the storage battery 3 is consumed and discharged, the direct-current voltage Vdc naturally decreases and it becomes possible to return to the original state.

本発明の第2の実施例の回路構成を図2に示す。第1の実施例である図1との相違点は、直流電圧判定器31の後段に出力電流判定器32が追加されている点である。直流電圧判定器31により、直流電圧Vdcの過電圧が判定された時、負荷が大きく、電流検出器40で検出される交流出力電流Ioutが十分に流れていれば、制御装置30の制御を切換えずに蓄電池充電制御に対し蓄電池放電指令器35から放電指令を追加することで、蓄電池3に流入した余分なエネルギーを並列コンバータ25から負荷に対して放電することが可能で、直流電圧Vdcを元の状態に戻すことが可能になる。しかし、この時交流出力電流Ioutが零で無負荷状態の場合は、蓄電池3の余分なエネルギーを放電する相手が無いため、入力商用電源側にエネルギーを回生する逆潮流となる危険性が生じる。逆潮流は無停電電源装置の性能上、許容されない。そこで、出力電流判定器32により、出力電流Ioutの大きさを判定し、Ioutが小さい時に限り、制御装置30の制御を切換えている。   A circuit configuration of the second embodiment of the present invention is shown in FIG. The difference from FIG. 1 which is the first embodiment is that an output current determination unit 32 is added after the DC voltage determination unit 31. When the overvoltage of the DC voltage Vdc is determined by the DC voltage determiner 31, if the load is large and the AC output current Iout detected by the current detector 40 flows sufficiently, the control of the control device 30 is not switched. By adding a discharge command from the storage battery discharge command device 35 to the storage battery charge control, it is possible to discharge excess energy flowing into the storage battery 3 from the parallel converter 25 to the load, and to restore the DC voltage Vdc to the original value. It becomes possible to return to the state. However, at this time, if the AC output current Iout is zero and there is no load, there is no other party that discharges excess energy of the storage battery 3, so that there is a risk of a reverse power flow that regenerates energy on the input commercial power supply side. Reverse power flow is not allowed due to the uninterruptible power supply performance. Therefore, the output current determiner 32 determines the magnitude of the output current Iout, and the control of the control device 30 is switched only when Iout is small.

本発明の第3の実施例の回路構成を図3に示す。第1の実施例である図1との相違点は、その主回路構成において、トランス2と直列コンバータ24を備えていない一般的な常時商用給電式無停電電源装置となっている点である。そのため、直流電圧Vdcが過電圧と判定された時に、入力電流Iinを零に制限する機能を図1では、トランス1と直列コンバータ24が果たしていたが、図3の回路では、ACスイッチ4をOFFすることで同等の機能としている。直流電圧が過電圧となった時の並列コンバータ25の運転切換え制御は図1と同様である。   The circuit configuration of the third embodiment of the present invention is shown in FIG. The difference from FIG. 1 which is the first embodiment is that the main circuit configuration is a general constant commercial power supply type uninterruptible power supply device which does not include the transformer 2 and the series converter 24. Therefore, in FIG. 1, the transformer 1 and the series converter 24 performed the function of limiting the input current Iin to zero when the DC voltage Vdc is determined to be an overvoltage. However, in the circuit of FIG. 3, the AC switch 4 is turned off. This is equivalent function. The operation switching control of the parallel converter 25 when the DC voltage becomes an overvoltage is the same as in FIG.

本発明の第4の実施例の回路構成を図4に示す。第3の実施例である図3との相違点は、直流電圧判定器31の後段に出力電流判定器32が追加されている点である。この第4の実施例は、第3の実施例と第2の実施例の組合せであるため、詳細は省略する。   The circuit configuration of the fourth embodiment of the present invention is shown in FIG. The difference from FIG. 3 which is the third embodiment is that an output current determination unit 32 is added after the DC voltage determination unit 31. Since the fourth embodiment is a combination of the third embodiment and the second embodiment, the details are omitted.

本発明は、常時商用給電式無停電電源装置の蓄電池の過電圧保護に関するものであるが、電力貯蔵手段を用いたスイッチング電源装置やDC/DCコンバータなどへの適用が可能である。   The present invention relates to overvoltage protection of a storage battery of a constantly commercial power supply type uninterruptible power supply, but can be applied to a switching power supply using a power storage means, a DC / DC converter, and the like.

本発明の第1の実施例を示す回路構成例Circuit configuration example showing the first embodiment of the present invention 本発明の第2の実施例を示す回路構成例Circuit configuration example showing the second embodiment of the present invention 本発明の第3の実施例を示す回路構成例Circuit configuration example showing the third embodiment of the present invention 本発明の第4の実施例を示す回路構成例Circuit configuration example showing the fourth embodiment of the present invention 従来の回路構成例Conventional circuit configuration example 図5の動作説明図Operation explanatory diagram of FIG.

符号の説明Explanation of symbols

1・・・商用電源 2・・・トランス 3・・・蓄電池
4・・・ACスイッチ 6・・・リアクトル 7、8・・・コンデンサ
9・・・負荷 10、10u、10v・・・交流入力端子
11、11U、11V・・・交流出力端子
20〜23・・・半導体ブリッジ 24・・・直列コンバータ
25・・・並列コンバータ
30・・・制御装置 31・・・直流電圧判定器
32・・・出力電流判定器 33、34・・・運転方式選択回路
35・・・蓄電池放電指令器 40〜42・・・電流検出器
DESCRIPTION OF SYMBOLS 1 ... Commercial power supply 2 ... Transformer 3 ... Storage battery 4 ... AC switch 6 ... Reactor 7, 8 ... Capacitor 9 ... Load 10, 10u, 10v ... AC input terminal
11, 11U, 11V ... AC output terminals 20-23 ... Semiconductor bridge 24 ... Series converter 25 ... Parallel converter 30 ... Control device 31 ... DC voltage determination device
32 ... Output current determination device 33, 34 ... Operation method selection circuit 35 ... Storage battery discharge command device 40-42 ... Current detector

Claims (2)

交流入力端子と交流出力端子との間に直列接続されたトランスと、前記トランスを駆動する第1のDC/AC変換器と、前記第1のDC/AC変換器と直流部を共通にした第2のDC/AC変換器と、前記直流部に接続された電力貯蔵手段とを備え、第2のDC/AC変換器の交流出力を前記交流出力端子に接続し、入力商用電源電圧変動が所定値以内の場合は、第2のDC/AC変換器により交流出力端子側から第1のDC/AC変換器への直流電力の供給又は回生を行い、第1のDC/AC変換器によりトランス電圧を調整することにより交流出力電圧を安定化し、入力商用電源電圧変動が所定値以上の場合は、電力貯蔵手段から第2のDC/AC変換器を介して負荷に電力を供給する無停電電源装置において、
入力商用電源電圧変動範囲が所定値以内の運転モードで、前記電力貯蔵手段の電圧が予め設定した値よりも高く、かつ負荷電力が設定された値よりも小さい条件で、一時的に第1のDC/AC変換器の動作を休止させ、電力貯蔵手段からの電力で第2のDC/AC変換器を介して負荷に電力を供給することを特徴とする無停電電源装置。
A transformer connected in series between an AC input terminal and an AC output terminal, a first DC / AC converter that drives the transformer, a first DC / AC converter, and a DC unit that shares a DC unit 2 DC / AC converter and a power storage means connected to the direct current section, the alternating current output of the second DC / AC converter is connected to the alternating current output terminal, the input commercial power supply voltage fluctuation is predetermined If the value is within the range, DC power is supplied or regenerated from the AC output terminal side to the first DC / AC converter by the second DC / AC converter, and the transformer voltage is supplied by the first DC / AC converter. To stabilize the AC output voltage and to supply power to the load from the power storage means via the second DC / AC converter when the input commercial power supply voltage fluctuation is greater than or equal to a predetermined value. In
In an operation mode in which the input commercial power supply voltage fluctuation range is within a predetermined value, the first voltage is temporarily set under the condition that the voltage of the power storage means is higher than a preset value and the load power is lower than a preset value. An uninterruptible power supply characterized in that the operation of a DC / AC converter is stopped and power is supplied to a load via a second DC / AC converter with power from a power storage means.
交流入力端子と交流出力端子との間に直列接続された交流入力開閉手段と、直流部に電力貯蔵手段を備えたDC/AC変換器とを備え、DC/AC変換器の交流出力を前記交流出力端子に接続し、入力商用電源電圧変動が所定値以内の場合は、DC/AC 変換器により交流出力端子側から電力貯蔵手段への直流電力の供給又は回生を行い、入力商用電源電圧変動が所定値以上の場合は、電力貯蔵手段からDC/AC変換器を介して負荷に電力を供給する無停電電源装置において、
入力商用電源電圧変動範囲が所定値以内の運転モードで、前記電力貯蔵手段の電圧が予め設定した値よりも高く、かつ負荷電力が設定された値よりも小さい条件で、一時的に交流入力開閉手段を開路し、電力貯蔵手段からの電力でDC/AC変換器を介して負荷に電力を供給することを特徴とする無停電電源装置。
AC input switching means connected in series between an AC input terminal and an AC output terminal, and a DC / AC converter having a power storage means in a DC section, and the AC output of the DC / AC converter is the AC When the input commercial power supply voltage fluctuation is within the specified value when connected to the output terminal, DC power is supplied or regenerated from the AC output terminal side to the power storage means by the DC / AC converter, and the input commercial power supply voltage fluctuation is In the case of the predetermined value or more, in the uninterruptible power supply that supplies power to the load from the power storage means via the DC / AC converter,
AC input switching is temporarily performed in an operation mode where the input commercial power supply voltage fluctuation range is within a predetermined value, under the condition that the voltage of the power storage means is higher than a preset value and the load power is lower than a preset value. An uninterruptible power supply characterized by opening the means and supplying power to the load via a DC / AC converter with power from the power storage means.
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